One Improved Collaborative Filtering Method Based on Information Transformation

Zhaoxing Liu, Ning Zhang
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Abstract

Abstract-In this paper, we propose a novel method combined classical collaborative filtering (CF) and bipartite network structure. Different from the classical CF, user similarity is viewed as personal recommendation power and during the recommendation process, it will be redistributed to different users. Furthermore, a free parameter is introduced to tune the contribution of the user to the user similairty. Numerical results demonstrates that decreasing the degree of user to some extent in method performs good in rank value and hamming distance. Furthermore, the correlation between degree and similarity is concerned to sovle the drastically change of our method performance.
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一种改进的基于信息转换的协同过滤方法
摘要:本文提出了一种结合经典协同滤波(CF)和二部网络结构的新方法。与经典的CF不同,用户相似度被视为个人推荐能力,在推荐过程中,它会被重新分配给不同的用户。此外,还引入了一个自由参数来调整用户对用户相似度的贡献。数值结果表明,在一定程度上减小用户程度的方法在秩值和汉明距离上都有较好的效果。此外,还考虑了度和相似度之间的相关性,以解决方法性能的急剧变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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